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Updated: Feb 5, 2026

Robust 3D DNA FISH Using Directly Labeled Probes
Published on: August 15, 2013
Probing the organization and dynamics of two DNA chains trapped in a nanofluidic cavity
Xavier Capaldi1, Zezhou Liu1, Yuning Zhang1
1Department of Physics, McGill University, 3600 rue University, Montreal, Quebec H3A 2T8, Canada. reisner@physics.mcgill.ca.
Abstract:
Here we present a pneumatically-actuated nanofluidic platform that has the capability of dynamically controlling the confinement environment of macromolecules in solution. Using a principle familiar from classic devices based on soft-lithography, the system uses pneumatic pressure to deflect a thin nitride lid into a nanoslit, confining molecules in an array of cavities embedded in the slit. We use this system to quantify the interactions of multiple confined DNA chains, a key problem in polymer physics with important implications for nanofluidic device performance and DNA partitioning/organization in bacteria and the eukaryotes. In particular, we focus on the problem of two-chain confinement, using differential staining of the chains to independently assess the chain conformation, determine the degree of partitioning/mixing in the cavities and assess coupled diffusion of the chain center-of-mass positions. We find that confinement of more than one chain in the cavity can have a drastic impact on the polymer dynamics and conformation.
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